A Fast Stochastic Contact Model for Planar Pushing and Grasping: Theory and Experimental Validation
May 30, 2017 Β· Declared Dead Β· π Robotics: Science and Systems
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Authors
Jiaji Zhou, J. Andrew Bagnell, Matthew T. Mason
arXiv ID
1705.10664
Category
cs.RO: Robotics
Citations
37
Venue
Robotics: Science and Systems
Last Checked
5 months ago
Abstract
Based on the convex force-motion polynomial model for quasi-static sliding, we derive the kinematic contact model to determine the contact modes and instantaneous object motion on a supporting surface given a position controlled manipulator. The inherently stochastic object-to-surface friction distribution is modelled by sampling physically consistent parameters from appropriate distributions, with only one parameter to control the amount of noise. Thanks to the high fidelity and smoothness of convex polynomial models, the mechanics of patch contact is captured while being computationally efficient without mode selection at support points. The motion equations for both single and multiple frictional contacts are given. Simulation based on the model is validated with robotic pushing and grasping experiments.
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